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Evolution and regulation of nitrogen flux through compartmentalized metabolic networks in a marine diatom

机译:海洋硅藻中通过间隔代谢网络的氮通量的演变和调控

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摘要

Diatoms outcompete other phytoplankton for nitrate, yet little is known about the mechanisms underpinning this ability. Genomes and genome-enabled studies have shown that diatoms possess unique features of nitrogen metabolism however, the implications for nutrient utilization and growth are poorly understood. Using a combination of transcriptomics, proteomics, metabolomics, fluxomics, and flux balance analysis to examine short-term shifts in nitrogen utilization in the model pennate diatom in Phaeodactylum tricornutum, we obtained a systems-level understanding of assimilation and intracellular distribution of nitrogen. Chloroplasts and mitochondria are energetically integrated at the critical intersection of carbon and nitrogen metabolism in diatoms. Pathways involved in this integration are organelle-localized GS-GOGAT cycles, aspartate and alanine systems for amino moiety exchange, and a split-organelle arginine biosynthesis pathway that clarifies the role of the diatom urea cycle. This unique configuration allows diatoms to efficiently adjust to changing nitrogen status, conferring an ecological advantage over other phytoplankton taxa.
机译:硅藻在硝酸盐方面胜过其他浮游植物,但对这种能力的支撑机制知之甚少。基因组和基因组研究表明,硅藻具有氮代谢的独特特征,但是,对养分利用和生长的含义知之甚少。使用转录组学,蛋白质组学,代谢组学,通量组学和通量平衡分析相结合的方法,研究了三角角锥藻中的三角型硅藻模型中氮利用的短期变化,我们获得了对氮的同化和细胞内分布的系统级理解。叶绿体和线粒体在硅藻中碳和氮代谢的关键交叉点处能量整合。参与该整合的途径是定位于细胞器的GS-GOGAT循环,用于氨基部分交换的天冬氨酸和丙氨酸系统,以及阐明了硅藻尿素循环作用的分裂细胞器精氨酸的生物合成途径。这种独特的构造使硅藻能够有效地适应不断变化的氮素状态,从而赋予了生态优势,使其优于其他浮游植物类群。

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